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im writing the DHT Segment in a jpeg file. I write Bytes into a Byte Array.

byte[] huffman_Info = {
                        //Mark as DHT Segment
                        (byte)0xff, (byte) 0xc4,
                        //length (has to be calculated later)
                        (byte)0x00, (byte) 0x15,
                        /*
                         * Info Byte:
                         * - HT information (1 byte):
                                bit 0..3: number of HT (0..3, otherwise error)
                                bit 4   : type of HT, 0 = DC table, 1 = AC table
                                bit 5..7: not used, must be 0
                         */
                        (byte)0x08


                        };

Im writing (for testing) a 0x08 in the Info Byte. This is 0000 for the first 4 Bits. Here my first questions: What does this "bit 0..3: number of HT (0..3, otherwise error)" mean? I googled it but all I find is the same specification over and over again. the 5th Bit is a 1 for a DC table and the the 3 last bits have to be 0 0x08 = 00001000.

However, JPEGSnoop, a decoding tool, says my Destination ID is 15, this is wrong, so its aborting the progress. Why is my Info Byte wrong?

As Always, thanks a lot in advance for your help

regards, Daniel

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I wrote in 0x0 for the Info Byte, and it seem to work now. I still dont know what the difference between AC and DC is, I googled it like crazy but couldnt find any information. It would be great if somebody who is familiar with JPEG encoding can give me a short explanation of it. thanks a lot. –  dan May 21 '11 at 12:44
    
haven't any of the answers you got been useful / solved your original question? If so you should consider accepting answers (and thereby improve your accept-rate). –  aioobe Jun 22 '11 at 14:44
    
yes, i should have closed the topic. The problem is solved. –  dan Jun 22 '11 at 15:02
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1 Answer

up vote 0 down vote accepted

The first nibble should be either 0 or 1, the second should be a number between 0 and 3. Any other values are illegal. So the only legal values for that byte would be:

0x00 0x01 0x02 0x03 0x10 0x11 0x12 0x13

The best way to learn JPEG is to read the standard, it's actually not that hard to understand. Google for "itu-1150.pdf" and you'll find it.

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we figured it out with the class already, but thanks a lot anyway. We indeed used the standard in the meantime, I can only agree, it´s quite decent written. –  dan Jun 22 '11 at 15:04
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